PubMed Health⌕ Search

Biomedical subjects

J R Cockcroft

Publications and source records attributed to J R Cockcroft.

At least 19 recordsLinked to original sources

Is arterial stiffening in Alström syndrome linked to the development of cardiomyopathy?

BACKGROUND: Alström syndrome (AS) is a rare autosomal recessive condition characterized by retinal degeneration, childhood obesity, and severe insulin resistance. Dilated cardiomyopathy of unknown aetiology is a well-recognized and potentially lethal complication. The aim of this study was to investigate the relationship between vascular function, hyperinsulinaemia and cardiac performance in AS. MATERIALS AND METHODS: Fifteen subjects with AS (mean age 21 years, range 10-35) were studied and compared with age-, sex-, and blood pressure-matched healthy controls. Large artery stiffness and wave reflections were assessed in both groups by measuring aortic and brachial pulse wave velocity (PWV) (carotid-femoral and carotid-radial) and augmentation index (AIX) (Sphygmocor). In AS subjects, left ventricular function was assessed by echocardiography and metabolic parameters including fasting insulin, glucose, lipids and brain natriuretic peptide were also measured. RESULTS: Comparing AS subjects vs. controls (mean +/- SD), AIX was elevated in AS subjects (18 +/- 9% vs. 3 +/- 11%, P < 0.0001). No significant changes in brachial PWV (8.1 +/- 1.3 m s(-1) vs. 7.3 +/- 1.1 m s(-1), P = 0.14) or aortic PWV (6.5 +/- 1.1 m s(-1) vs. 6.0 +/- 1.0 m s(-1), P = 0.26) were observed. AS subjects were hyperinsulinaemic and had disturbances in lipid profiles relative to controls. No correlations were observed between vascular, metabolic and echocardiographic parameters. CONCLUSIONS: In AS there are alterations in the shape of the central arterial pressure waveform associated with augmented aortic systolic pressure and indicative of increased wave reflection. Unfavourable central arterial haemodynamics in AS may contribute to the development of cardiomyopathy but other aetiological factors are probably involved.

Adolescent↗

The effect of exercise on large artery haemodynamics in healthy young men.

BACKGROUND: Brachial blood pressure predicts cardiovascular outcome at rest and during exercise. However, because of pulse pressure amplification, there is a marked difference between brachial pressure and central (aortic) pressure. Although central pressure is likely to have greater clinical importance, very little data exist regarding the central haemodynamic response to exercise. The aim of the present study was to determine the central and peripheral haemodynamic response to incremental aerobic exercise. MATERIALS AND METHODS: Twelve healthy men aged 31 +/- 1 years (mean +/- SEM) exercised at 50%, 60%, 70% and 80% of their maximal heart rate (HRmax) on a bicycle ergometer. Central blood pressure and estimated aortic pulse wave velocity, assessed by timing of the reflected wave (T(R)), were obtained noninvasively using pulse wave analysis. Pulse pressure amplification was defined as the ratio of peripheral to central pulse pressure and, to assess the influence of wave reflection on amplification, the ratio of peripheral pulse pressure to nonaugmented central pulse pressure (PPP : CDBP-P1) was also calculated. RESULTS: During exercise, there was a significant, intensity-related, increase in mean arterial pressure and heart rate (P < 0.001). There was also a significant increase in pulse pressure amplification and in PPP : CDBP-P(1) (P < 0.001), but both were independent of exercise intensity. Estimated aortic pulse wave velocity increased during exercise (P < 0.001), indicating increased aortic stiffness. There was also a positive association between aortic pulse wave velocity and mean arterial pressure (r = 0.54; P < 0.001). CONCLUSIONS: Exercise significantly increases pulse pressure amplification and estimated aortic stiffness.

Adult↗

Perindopril: the reasonable choice in patients with coronary artery disease.

Recent studies in patients with coronary artery disease (CAD) have suggested that angiotensin-converting enzyme (ACE) inhibitors may have benefits beyond blood pressure reduction alone. Increased arterial stiffness, itself an emerging risk factor for CAD, adversely influences ventricular vascular interaction, leading to an increased central aortic pulse pressure. A number of recent studies have demonstrated a clear relationship between central pulse pressure and angiographic CAD. Furthermore, aortic stiffness also correlates with CAD. These studies are consistent with the hypothesis that central aortic stiffness may promote the development of CAD and that therapeutic intervention targeted at reducing arterial stiffness may be of benefit in patients with CAD. The ACE inhibitor, perindopril, has been shown to decrease arterial stiffness, largely independently of any effect on peripheral blood pressure. Results of the recent REASON study demonstrate that perindopril, in combination with indapamide, reduces central systolic and pulse pressure to a greater degree than the beta-blocker atenolol and that this effect is due to improved arterial stiffness and decreased wave reflection. In addition to its other beneficial effects, such as improved endothelial function and decreased inflammation, these haemodynamic effects of perindopril may therefore have contributed to the decrease in cardiovascular events seen in patients in the EUROPA study. Overall, perindopril, in addition to lowering peripheral blood pressure, decreases arterial stiffness and central pulse pressure. In individuals with CAD, perindopril would thus appear to be a very reasonable choice.

Adrenergic beta-Antagonists↗

Cardiovascular implications of exposure to traffic air pollution during exercise.

Regular aerobic exercise is recommended by physicians to improve health and longevity. However, individuals exercising in urban regions are often in contact with air pollution, which includes particles and gases associated with respiratory disease and cancer. We describe the recent evidence on the cardiovascular effects of air pollution, and the implications of exercising in polluted environments, with a view to informing clinicians and other health professionals. There is now strong evidence that fine and ultra fine particulate matter present in air pollution increases cardiovascular morbidity and mortality. The main mechanisms of disease appear to be related to an increase in the pathogenic processes associated with atherosclerosis. People exercising in environments pervaded by air contaminants are probably at increased risk, due to an exercise-induced amplification in respiratory uptake, lung deposition and toxicity of inhaled pollutants. We make evidence-based recommendations for minimizing exposure to air-borne toxins while exercising, and suggest that this advice be passed on to patients where appropriate.

Air Pollutants↗

Arterial stiffness and central blood pressure, as determined by pulse wave analysis, in rheumatoid arthritis.

BACKGROUND: Rheumatoid arthritis (RA) is associated with increased cardiovascular mortality for reasons which are insufficiently understood. Chronic inflammation may impair vascular function and lead to an increase of arterial stiffness, an important determinant of cardiovascular risk. OBJECTIVE: To investigate the augmentation index (AIx) as a measure of arterial stiffness in patients with RA, free of cardiovascular disease or risk factors, by means of a matched cohort pilot study. METHOD: Patients with a diagnosis of RA, aged 50 years or younger, were screened for the absence of clinical cardiovascular disease and risk factors, such as smoking, hypercholesterolaemia, hypertension, and excessive systemic steroid use. Suitable subjects were assessed by non-invasive radial pulse wave analysis to determine their AIx. These data were compared with those from healthy controls, matched closely for sex, age, mean peripheral blood pressure, heart rate, and height. RESULTS: 14 suitable patients (11 female; mean (SD) age 42 (6) years, mean RA duration 11 (6) years; mean C reactive protein 19 (15) mg/l, no clinical systemic rheumatoid vasculitis) and matched controls were identified. The RA group had a higher mean (SD) AIx and mean (SD) central blood pressure (BP) than the control group: AIx 26.2 (6.7) v 18.9 (10.8)%, p=0.028; mean central BP 91.3 (7.8) v 88.2 (8.9) mm Hg, p<0.0001, by two tailed, paired t test. CONCLUSIONS: This preliminary study suggests that RA is associated with increased arterial stiffness and central BP, independently of clinically manifest cardiovascular disease or risk factors. This may contribute to the increased cardiovascular mortality in RA.

Adolescent↗

Effects of GH replacement on endothelial function and large-artery stiffness in GH-deficient adults: a randomized, double-blind, placebo-controlled study.

OBJECTIVES: Hypopituitary adults with growth hormone deficiency (GHD) have an increased cardiovascular mortality, although the mechanisms remain unclear. Endothelial dysfunction, characterized by reduced nitric oxide (NO) bioavailability, is a key early event in atherogenesis and is associated with increased vascular smooth muscle tone and arterial stiffening. DESIGN AND PATIENTS: In a randomized, double-blind, placebo-controlled study, we investigated the effects of GH replacement on endothelial function and large-artery stiffness in 32 GHD adults (19 males, 13 females) (age range 19-64 years) over a 6-month period. Thirty-two age- and sex-matched healthy controls were also studied. MEASUREMENTS: Endothelial function was assessed using ultrasonic wall tracking to measure flow-mediated dilatation (FMD) of the brachial artery. Large artery stiffness was assessed by pulse wave analysis of the radial artery pressure waveform, allowing determination of the corresponding central arterial pressure waveform and derivation of the augmentation index. Fasting lipid profiles, glucose and insulin were also measured. RESULTS: At baseline, FMD (mean +/- SD) was impaired in GH-deficient subjects vs. controls (3.4 +/- 2.3 vs. 5.7 +/- 2.0%, P < 0.0001), although endothelium-independent dilatation was similar. The augmentation index was higher in GH-deficient subjects vs. controls (23 +/- 12 vs. 14 +/- 14%, P < 0.01). GH-deficient subjects had higher LDL cholesterol (4.1 +/- 0.8 vs. 3.5 +/- 0.8 mmol/l, P < 0.01) and lower HDL cholesterol (1.1 +/- 0.3 vs. 1.4 +/- 0.4 mmol/l, P < 0.01). In GH-deficient subjects, there were inverse correlations between LDL cholesterol and FMD (r = -0.40, P < 0.05) and between FMD and the augmentation index (r = - 0.58, P < 0.01). Regression analysis identified FMD as an independent predictor of the augmentation index (P < 0.0001). In comparison with baseline, GH replacement resulted in an increase in FMD (5.0 +/- 2.6 vs. 2.8 +/- 1.9%, P < 0.01). There were decreases in central aortic systolic pressure (117 +/- 15 vs. 123 +/- 17 mmHg, P < 0.01), diastolic pressure (82 +/- 10 vs. 86 +/- 8 mmHg, P < 0.01) and the augmentation index (22 +/- 8% vs. 26 +/- 10%, P < 0.05) despite unchanged brachial pressure indices. LDL cholesterol also decreased (3.5 +/- 0.8 vs. 4.2 +/- 0.8 mmol/l, P < 0.01). There were no significant changes in the placebo group. CONCLUSIONS: Adult GHD is associated with endothelial dysfunction and increased large-artery stiffness. An improvement in endothelial function and a reduction in arterial stiffness following GH replacement suggests an important therapeutic role for GH in reducing cardiovascular risk associated with adult GHD.

Adult↗

Pressure amplification explains why pulse pressure is unrelated to risk in young subjects.

Pulse pressure rather than diastolic pressure is the best predictor of coronary heart disease risk in older subjects, but the converse is true in younger subjects. We hypothesized that this disparity results from an age-related difference in pressure amplification from the aorta to brachial artery. Data from 212 subjects age < 50 years and 230 subjects age > or =50 years were abstracted from a community database. All subjects were free from cardiovascular disease, diabetes, and medication. Peripheral blood pressure was assessed by sphygmomanometry. Radial artery waveforms recorded noninvasively by applanation tonometry were used to derive central blood pressure. Pressure amplification (peripheral/central pulse pressure ratio) was linearly related to age (r=0.7; P<0.001). There was an inverse, linear relationship between amplification and diastolic pressure in the younger group (r=0.3; P<0.001) but not in older subjects (r=0.1; P=0.2). There was no relationship in either group when the amplification ratio was calculated with nonaugmented central pressure. Amplification is reduced in older subjects because of enhanced wave reflection. In younger, but not older, subjects, amplification declines as diastolic pressure rises. Therefore, peripheral pulse pressure underestimates the effect that diastolic pressure has on central pulse pressure in younger subjects. This may explain why diastolic pressure is a better predictor of risk in this age group and suggests that assessment of central pressure may improve risk stratification further.

Adult↗

Changes in the derived central pressure waveform and pulse pressure in response to angiotensin II and noradrenaline in man.

Peripheral pulse pressure provides a surrogate measure of arterial stiffness. Analysis of the central pressure waveform allows assessment of central pulse pressure and arterial stiffness. The aim of the present study was to assess the effect of vasoconstrictor drugs on pulse pressure amplification and arterial stiffness in vivo. Eight healthy male subjects (mean age 30 years) received an infusion of angiotensin II (1, 3, 6 and 10 ng kg(-1) min(-1)), noradrenaline (10, 30, 60 and 100 ng kg(-1) min(-1)) and matching placebo, in random order, on separate occasions. Peripheral blood pressure and cardiac index were recorded non-invasively. Pulse wave analysis was used to determine augmentation index (AIx), which provides a measure of systemic arterial stiffness, aortic stiffness and central arterial pressure. Infusion of both active drugs resulted in a significant increase in peripheral mean arterial pressure (PMAP), peripheral vascular resistance, AIx, aortic stiffness and central pulse pressure, but only angiotensin II reduced cardiac index. Peripheral pulse pressure was unaffected by infusion of angiotensin II but increased with noradrenaline, which also produced a greater reduction in pulse pressure amplification than angiotensin II. However, the linear relationship of PMAP with both AIx and aortic stiffness did not differ significantly between drugs. These results demonstrate that intravenous infusion of angiotensin II and noradrenaline increase aortic and systemic arterial stiffness. Despite a similar effect on both parameters, for a given change in PMAP, the two drugs had divergent effects on peripheral pulse pressure and pulse pressure amplification. These data reveal that assessment of peripheral pulse pressure does not always reliably predict changes in central pulse pressure or arterial stiffness.

Adult↗

Adrenomedullin (ADM) in the human forearm vascular bed: effect of neutral endopeptidase inhibition and comparison with proadrenomedullin NH2-terminal 20 peptide (PAMP).

AIMS: To compare the haemodynamic responses of proadrenomedullin N-terminal 20 peptide (PAMP) and adrenomedullin (ADM) in the forearm vascular bed of healthy male volunteers, and to investigate the role of neutral endopeptidase (NEP) in the metabolism of ADM. METHODS: On two separate occasions, ADM (1-30 pmol x min(-1)) and PAMP (100-3000 pmol x min(-1)) were infused into the brachial artery of eight male subjects, and forearm blood flow (FBF) assessed using venous occlusion plethysmography. In a second study, eight male subjects received the same doses of ADM, co-infused with either the NEP inhibitor thiorphan (30 nmol x min(-1)) or the control vasoconstrictor noradrenaline (120 pmol x min(-1)), on separate occasions. Both studies were conducted in a double-blind, randomized manner. RESULTS: ADM and PAMP produced a dose-dependent increase in FBF (P < or = 0.002). Based on the dose producing a 50% increase in FBF, ADM was approximately 60 times more potent than PAMP. Thiorphan and noradrenaline produced similar reductions in FBF of 14 +/- 4% (mean +/- s.e. mean) and 22 +/- 6%, respectively (P = 0.4). However, the area under the dose-response curve was significantly greater during co-infusion of ADM with thiorphan than with noradrenaline (P = 0.028), as was the maximum increase in FBF ratio (2.1 +/- 1.0 vs 1.2 +/- 0.2; P = 0.030). CONCLUSIONS: ADM and PAMP both produce a local dose-related vasodilatation in the human forearm, but PAMP is approximately 60 times less potent than ADM. In addition, NEP inhibition potentiates the haemodynamic effects of ADM. These findings suggest that PAMP may not play a role in the physiological regulation of blood flow. However, in pathophysiological conditions such as hypertension and heart failure, NEP inhibition may exert a beneficial effect by increasing the biological activity of ADM.

Adrenomedullin↗

Acute methionine loading does not alter arterial stiffness in humans.

Hyperhomocystinemia is a risk factor for cardiovascular disease, and acute elevation of plasma homocysteine after methionine loading impairs endothelial function in healthy subjects. Interestingly, pretreatment with vitamin C can ameliorate this effect. We have already shown that acute oral vitamin C administration reduces arterial stiffness in healthy subjects, and the aim of the present study was to investigate the effect of methionine loading on arterial stiffness with and without concomitant vitamin C using the noninvasive technique of pulse wave analysis. Eight healthy male subjects (mean age, 29 years; range, 20-42 years) were studied on three occasions at weekly intervals. In a double-blind, double-dummy, randomized order they received orally either 100 mg/kg methionine, 100 mg/kg methionine plus 2 g of vitamin C, or matching placebos. Peripheral and central blood pressure, heart rate, cardiac index, arterial stiffness, and plasma homocysteine levels were assessed at baseline and 6 hours after dosing. Compared with placebo, there was no significant change in any of the hemodynamic parameters, including arterial stiffness, after oral methionine, although plasma homocysteine did increase from 11.5 +/- 1.6 to 28.7 +/- 4.4 microM (mean +/- SEM; p < 0.001). Combined methionine and vitamin C led to a similar increase in plasma homocysteine but significantly reduced augmentation index by 10.5 +/- 3.2% (p = 0.02). Acute hyperhomocystinemia does not significantly alter arterial stiffness, as assessed by pulse wave analysis, whereas a combination of methionine and vitamin C leads to a similar reduction in augmentation index to that previously described after vitamin C alone. These data reinforce evidence that vitamin C reduces arterial stiffness but do not indicate any important interaction with oral methionine.

Adult↗

Evidence against oxidative stress as mechanism of endothelial dysfunction in methionine loading model.

Endothelial dysfunction reflects reduced nitric oxide (NO) bioavailability due to either reduced production, inactivation of NO, or reduced smooth muscle responsiveness. Oral methionine loading causes acute endothelial dysfunction in healthy subjects and provides a model in which to study mechanisms. Endothelial function was assessed using flow-mediated dilatation (FMD) of the brachial artery in humans. Three markers of oxidative stress were measured ex vivo in venous blood. NO responsiveness was assessed in vascular smooth muscle and platelets. Oral methionine loading induced endothelial dysfunction (FMD decreased from 2.8 +/- 0.8 to 0.3 +/- 0.3% with methionine and from 2.8 +/- 0.8 to 1.3 +/- 0.3% with placebo; P < 0.05). No significant changes in measures of plasma oxidative stress or in vascular or platelet sensitivity to submaximal doses of NO donors were detected. These data suggest that oxidative stress is not the mechanism of endothelial dysfunction after oral methionine loading. Furthermore, the preservation of vascular and platelet NO sensitivity makes a signal transduction abnormality unlikely.

Adolescent↗

The effects of induced hypogonadism on arterial stiffness, body composition, and metabolic parameters in males with prostate cancer.

Sex hormones appear to play a pivotal role in determining cardiovascular risk. Androgen deprivation therapy for males with prostate cancer results in a hypogonadal state that may have important, but as yet undetermined, effects on the vasculature. We studied the effects of androgen deprivation therapy on large artery stiffness in 22 prostate cancer patients (mean age, 67 +/- 8 yr) over a 6-month period. Arterial stiffness was assessed using pulse-wave analysis, a technique that measures peripheral arterial pressure waveforms and generates corresponding central aortic waveforms. This allows determination of the augmentation of central pressure resulting from wave reflection and the augmentation index, a measure of large artery stiffness. Body compositional changes were assessed using bioelectrical impedance analysis. Fasting lipids, glucose, insulin, testosterone, and estradiol were measured. After a 3-month treatment period, the augmentation index increased from 24 +/- 6% (mean +/- SD) at baseline to 29 +/- 9% (P = 0.003) despite no change in peripheral blood pressure. Timing of wave reflection was reduced from 137 +/- 7 to 129 +/- 10 msec (P = 0.003). Fat mass increased from 20.2 +/- 9.4 to 21.9 +/- 9.6 kg (P = 0.008), whereas lean body mass decreased from 63.2 +/- 6.8 to 61.5 +/- 6.0 kg (P = 0.016). There were no changes in lipids or glucose during treatment. Median serum insulin rose from 11.8 (range, 5.6-49.1) to 15.1 (range, 7.3-83.2) mU/liter at 1 month (P = 0.021) and to 19.3 (range, 0-85.0 mU/liter by 3 months (P = 0.020). There was a correlation between the changes in fat mass and insulin concentration over the 3-month period (r = 0.56; P = 0.013). In a subgroup of patients whose treatment was discontinued after 3 months, the augmentation index decreased from 31 +/- 7% at 3 months to 29 +/- 5% by 6 months, in contrast to patients receiving continuing treatment in whom the augmentation index remained elevated at 6 months compared with baseline (P = 0.043). These data indicate that induced hypogonadism in males with prostate cancer results in a rise in the augmentation of central arterial pressure, suggesting large artery stiffening. Adverse body compositional changes associated with rising insulin concentrations suggest reduced insulin sensitivity. These adverse hemodynamic and metabolic effects may increase cardiovascular risk in this patient group.

Adipose Tissue↗

The influence of heart rate on augmentation index and central arterial pressure in humans.

Arterial stiffness is an important determinant of cardiovascular risk. Augmentation index (AIx) is a measure of systemic arterial stiffness derived from the ascending aortic pressure waveform. The aim of the present study was to assess the effect of heart rate on AIx. We elected to use cardiac pacing rather than chronotropic drugs to minimize confounding effects on the systemic circulation and myocardial contractility. Twenty-two subjects (13 male) with a mean age of 63 years and permanent cardiac pacemakers in situ were studied. Pulse wave analysis was used to determine central arterial pressure waveforms, non-invasively, during incremental pacing (from 60 to 110 beats min-1), from which AIx and central blood pressure were calculated. Peripheral blood pressure was recorded non-invasively from the brachial artery. There was a significant, inverse, linear relationship between AIx and heart rate (r = -0.76; P < 0.001). For a 10 beats min-1 increment, AIx fell by around 4 %. Ejection duration and heart rate were also inversely related (r = -0. 51; P < 0.001). Peripheral systolic, diastolic and mean arterial pressure increased significantly during incremental pacing. Although central diastolic pressure increased significantly with pacing, central systolic pressure did not. There was a significant increase in the ratio of peripheral to central pulse pressure (P < 0.001), which was accounted for by the observed change in central pressure augmentation. These results demonstrate an inverse, linear relationship between AIx and heart rate. This is likely to be due to alterations in the timing of the reflected pressure wave, produced by changes in the absolute duration of systole. Consideration of wave reflection and aortic pressure augmentation may explain the lack of rise in central systolic pressure during incremental pacing despite an increase in peripheral pressure.

Age Factors↗